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प्रश्न
If f(x) = eax then show that f(0), Δf(0), Δ2f(0) are in G.P
उत्तर
Given f(x) = eax
f(0) = e° = 1 .......(1)
Δf(x) = `"e"^("a"(x + "h")` – eax
= `"e"^("a"x+"ah")` – eax
= eax. eah – eax
= eax (eah – 1)
Δf(0) = e° (eah – 1)
= (eah – 1) ........(2)
Δ2f(x)= Δ[Δf(x)]
= `Δ["e"^("a"(x + "h")) – "e"^("a"x)]`
`["e"^("a"(x + "h" + "h")) – "e"^("a"(x + "h"))] – ["e"^("a"(x + "h")) – "e"^("a"x)]`
= `"e"^("a"(x + 2"h")) – "e"^("a"(x + "h")) – "e"^("a"(x + "h")) + "e"^("a"x)`
Δ2f(0) = Δ[Δf(x)]
= ea(2h) – ea(h) – ea(h) + e0
= e2ah – eah – eah + 1
= (eah)2 – 2eah + 1
= [eah – 1]2 ..........(3)
From (1), (2) and (3)
[t2]2 = [Δf(0)]2 = (eah – 1)2
t1 × t3 = f(0) × Δ2f(0)
= (1)(eah – 1)2 = (eah – 1)2
⇒ [Δf(0)]2 = f(0) × Δ2f(0)
∴ f(0), Δf(0), Δ2f(0) an is G.P.
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